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Characterisation of light emitting diodes (LEDs) for application in digital holographic microscopy for inspection of micro and nanostructured surfaces

机译:用于数字全息显微镜以检查微米和纳米结构表面的发光二极管(LED)的特性

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摘要

Partial coherent light sources open up prospects for phase noise reduction in digital holographically reconstructed phase distributions by suppressing multiple reflections in the experimental setup. Thus, light emitting diodes (LEDs) are investigated for application in digital holographic microscopy. First, the spectral properties and the resulting coherence length of an LED are characterised. In addition, an analysis of dispersion effects and their influence on the hologram formation is carried out. The coherence length of LEDs in the range of a few micrometers restricts the maximum interference fringe number in off-axis holography for spatial phase shifting. Thus, the application of temporal phase-shifting-based digital holographic reconstruction techniques is compared to spatial phase-shifting-based methods. It is demonstrated that LEDs are applicable for digital holographic microscopy in connection with both spatial and temporal phase-shifting-based techniques for reduction of noise in comparison to a laser-light-based experimental setup.
机译:通过抑制实验装置中的多次反射,部分相干光源为数字全息重建的相位分布中的相位噪声降低开辟了前景。因此,研究了发光二极管(LED)在数字全息显微镜中的应用。首先,表征LED的光谱特性和所得相干长度。另外,进行了色散效应及其对全息图形成的影响的分析。 LED的相干长度在几微米的范围内,限制了用于空间相移的离轴全息术中的最大干涉条纹数。因此,将基于时间相移的数字全息重建技术的应用与基于空间相移的方法进行了比较。事实证明,与基于激光的实验装置相比,LED可以与基于空间和时间相移的技术相结合,适用于数字全息显微术,从而降低噪声。

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